Visible Light CO2 Reduction to CH4 Using Hierarchical Yolk@shell TiO2- xHx Modified with Plasmonic Au-Pd Nanoparticles

Engineering of advanced semiconductor photocatalysts for CO2 conversion to solar fuels is a promising strategy to solve the greenhouse effect and energy crisis. Herein, hierarchical urchin-like yolk@shell TiO2-xHx decorated with core/shell Au-Pd plasmonic nanoparticles (HUY@S-TOH/AuPd) have been prepared using a multistep process and are employed as an advanced visible light active photocatalyst in CO2 conversion to CH4 with a rate of 47 μmol/gcat·h (up to 126 μmol/gcat after 7 h). Different engineered sites in this structure for high gas adsorption, powerful visible light activation, and intense electron transportation are responsible for the observed high photocatalytic CO2 conversion efficiency. The present smart design process can produce considerable cooperation in not only disclosing the architectural engineering for the improvement of photoconversion efficiency but also disclosing it as a viable and appropriate photocatalytic process to sustainable energy production. Copyright © 2020 American Chemical Society.

Авторы
Ziarati A.1, 2 , Badiei A.1 , Luque R. 3, 4 , Dadras M.5 , Burgi T.2
Издательство
American Chemical Society
Номер выпуска
9
Язык
Английский
Страницы
3689-3696
Статус
Опубликовано
Том
8
Год
2020
Организации
  • 1 School of Chemistry, College of Science, University of Tehran, Tehran, 1417614418, Iran
  • 2 Department of Physical Chemistry, University of Geneva, 30 Quai Ernest-Ansermet, Geneva 4, 1211, Switzerland
  • 3 Departamento de Quimica Organica, Universidad de Cordoba, Campus de Rabanales, Edificio Marie Curie, Cordoba, E-14014, Spain
  • 4 Peoples Friendship University of Russia (RUDN University), 6 Miklukho Maklaya str., Moscow, 117198, Russian Federation
  • 5 CSEM Centre Suisse d'Electronique et de and Microtecnique SA, Jaquet-Droz 1, Case Postal, Neuchâtel, 2002, Switzerland
Ключевые слова
CO2 conversion; Nanoarchitecture; Oxygen vacancy; Photocatalysis; Plasmonic nanoparticles
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